Related Experiment Video
Updated: Jan 17, 2026

Dual CRISPR-Interference Strategy for Targeting Synthetic Lethal Interactions Between Non-Coding RNAs in Cancer Cells
Published on: May 30, 2025
PRT3789 Is a First-in-Human SMARCA2-Selective Degrader That Induces Synthetic Lethality in SMARCA4-Mutated Cancers
Michael Hulse1, Min Wang1, Chaoyi Xu1
1Prelude Therapeutics Incorporated, Wilmington, Delaware.
Abstract:
SMARCA2 and SMARCA4 are the core catalytic subunits of the switch/sucrose nonfermentable (SWI/SNF) chromatin remodeling complex. Approximately 10% of patients with non-small cell lung cancer patients harbor SMARCA4 mutations, resulting in protein loss or loss-of-function alterations. These SMARCA4-deficient cancers are highly dependent on SMARCA2 for proliferation, growth, and survival, making SMARCA2 a promising synthetic lethal target. In this study, we developed and characterized PRT3789, a clinical-stage SMARCA2-selective targeted protein degrader. It induced polyubiquitination at lysine residues unique to SMARCA2 through stable ternary complex formation with the Von Hippel-Lindau E3 ligase. The selectivity was driven by interactions with an extended loop unique to SMARCA2, as revealed by structure-based analyses. PRT3789 promoted selective degradation of SMARCA2 while sparing its highly homologous paralog, SMARCA4. In SMARCA4-deficient models, SMARCA2 degradation disrupted SWI/SNF complex integrity by inducing dissociation of multiple subunits, leading to downstream transcriptional reprogramming. PRT3789 induced robust tumor growth inhibition and regression in SMARCA4-deficient models, both as monotherapy and in combination with targeted therapies or chemotherapies. In contrast, SMARCA4 wild-type models exhibited minimal response despite confirmed SMARCA2 degradation, consistent with SMARCA4 sparing and preserved SWI/SNF complex integrity. In clinical settings, PRT3789 reduced SMARCA2 protein levels in peripheral blood mononuclear cells from patients with SMARCA4-mutated cancers. Initial signs of clinical activity have been observed, including RECIST-confirmed partial responses. Together, these findings demonstrate the selective targeting of SMARCA2 and the potential for a favorable therapeutic index with PRT3789. Phase I/II clinical trials with PRT3789 are ongoing in biomarker-selected patients with SMARCA4-mutated solid tumors.
Significance:
PRT3789 selectively degrades SMARCA2 and demonstrates activity in SMARCA4-deficient cancers while sparing wild-type models, validating paralog synthetic lethality, and supporting clinical development in SMARCA4-mutated patients, a population with high unmet need.
Insights
A novel drug, PRT3789, selectively degrades SMARCA2, offering a new treatment for SMARCA4-deficient cancers. This targeted approach shows promise in clinical trials for patients with high unmet needs.
Area of Science:
- Oncology
- Molecular Biology
- Drug Development
Background:
- SMARCA4 mutations occur in ~10% of non-small cell lung cancers, leading to dependency on SMARCA2.
- SMARCA2 is a synthetic lethal target in SMARCA4-deficient cancers.
- SWI/SNF chromatin remodeling complex dysfunction drives cancer progression.
Purpose of the Study:
- To develop and characterize PRT3789, a SMARCA2-selective targeted protein degrader.
- To evaluate the efficacy of PRT3789 in preclinical models of SMARCA4-deficient cancers.
- To assess the clinical activity of PRT3789 in patients with SMARCA4-mutated cancers.
Main Methods:
- Structure-based design of PRT3789 for selective SMARCA2 degradation.
- In vitro and in vivo studies in SMARCA4-deficient and wild-type cancer models.
- Pharmacodynamic assessment of SMARCA2 degradation in patient samples.
- Phase I/II clinical trials in biomarker-selected patients.
Main Results:
- PRT3789 selectively induced polyubiquitination and degradation of SMARCA2 via VHL E3 ligase.
- SMARCA2 degradation disrupted SWI/SNF complex integrity and transcriptional reprogramming in SMARCA4-deficient models.
- PRT3789 demonstrated robust tumor growth inhibition and regression in preclinical models.
- Clinical trials showed SMARCA2 protein reduction and signs of activity, including partial responses.
Conclusions:
- PRT3789 is a first-in-class SMARCA2-selective targeted protein degrader.
- PRT3789 exhibits potent anti-tumor activity in SMARCA4-deficient cancers.
- Clinical development of PRT3789 is supported by preclinical and early clinical data for patients with SMARCA4-mutated solid tumors.

